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Investigation and Modeling of Gas-Liquid Mass Transfer in a Sparged and Non-Sparged Continuous Stirred Tank Reactor with Potential Application in Syngas Fermentation

机译:稀液和非稀液连续搅拌釜反应器中气液传质的研究与建模及其在合成气发酵中的潜在应用

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Syngas (mixture of CO, H 2 and CO 2 ) fermentation suffers from mass transfer limitation due to low solubility of CO and H 2 in the liquid medium. Therefore, it is critical to characterize the mass transfer in syngas fermentation reactors to guide in delivery of syngas to the microorganisms. The objective of this study is to measure and predict the overall volumetric mass transfer coefficient, k L a for O 2 at various operating conditions in a 7-L sparged and non-sparged continuous stirred-tank reactor (CSTR). Measurements indicated that the k L a for O 2 increased with an increase in air flow rate and agitation speed. However, k L a for O 2 decreased with the increase in the headspace pressure. The highest k L a for O 2 with air sparged in the CSTR was 116 h ?1 at 600 sccm, 900 rpm, 101 kPa, and 3 L working volume. Backmixing of the headspace N 2 in the sparged CSTR reduced the observed k L a . The mass transfer model predicted the k L a for O 2 within 10% of the experimental values. The model was extended to predict the k L a for syngas components CO, CO 2 and H 2 , which will guide in selecting operating conditions that minimize power input to the bioreactor and maximize the syngas conversion efficiency.
机译:由于CO和H 2在液体培养基中的低溶解度,合成气(CO,H 2和CO 2的混合物)发酵受到传质限制。因此,表征合成气发酵反应器中的传质特性以指导合成气向微生物的输送至关重要。这项研究的目的是测量和预测在7 L鼓泡和非鼓泡连续搅拌釜反应器(CSTR)中在各种操作条件下O 2的总体积传质系数k L a。测量表明,O 2的k L a随着空气流速和搅拌速度的增加而增加。但是,O 2的k L a随着顶部空间压力的增加而降低。在600 sccm,900 rpm,101 kPa和3 L的工作体积下,在CSTR中鼓入空气的O 2的最高k L a为116 h?1。顶空N 2在鼓泡的CSTR中的返混减少了所观察到的k L a。传质模型预测O 2的k L a在实验值的10%以内。扩展了模型,以预测合成气成分CO,CO 2和H 2的k L a,这将指导选择运行条件,以最大程度地减少输入生物反应器的功率并最大化合成气转化效率。

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